大连理工大学辽宁省海水淡化重点实验室,辽宁,大连,116024
网络首发:2014-04-10,
纸质出版:2014
移动端阅览
刘华, 沈胜强, 龚路远, 等. 水平管降膜蒸发器温度损失的计算与分析[J]. 西安交通大学学报, 2014,48(4):90-94.
Evaporation Temperature Loss Evaluation in Horizontal Tube Falling Film Evaporator[J]. 2014, 48(4): 90-94.
刘华, 沈胜强, 龚路远, 等. 水平管降膜蒸发器温度损失的计算与分析[J]. 西安交通大学学报, 2014,48(4):90-94. DOI: 10.7652/xjtuxb201404016.
Evaporation Temperature Loss Evaluation in Horizontal Tube Falling Film Evaporator[J]. 2014, 48(4): 90-94. DOI: 10.7652/xjtuxb201404016.
为了研究降膜蒸发管束阻力造成的压降及其对传热的影响
以降膜蒸发器内广泛应用的正三角排列管束为物理模型
采用由实验数据拟合出来的压降系数
计算了压降对应的温度损失
分析了蒸汽产率、饱和温度、管列数和喷淋密度对蒸发温度损失的影响。结果表明:温度损失随喷淋密度、管列数和蒸汽产率的增加而升高
随饱和温度的升高而减小; 在相同的蒸汽质量流量下
45 ℃蒸汽的温度损失是70 ℃时的6倍
而喷淋密度为0.08 kg/(m·s)时的温度损失约是0.02 kg/(m·s)时的2倍; 大型降膜蒸发器内管束区内的温度损失随管列数的增加呈现抛物线型升高。为保证各效蒸发器的传热效率
提出每一效蒸发器温度损失都相等的等温度损失设计思想
其对低温多效蒸发器的设计具有指导意义。
To investigate the vapor pressure drop due to the resistance force of tube bundle and the effect on heart transfer
triangular arrangement tube bundle widely applied to falling film evaporator is chosen as the physical model to evaluate the vapor temperature loss
and the fitting coefficient of pressure drop from the experimental data is provided. The effects of steam mass flux
saturated temperature
tube column number and water flow rate on vapor temperature loss are analyzed respectively. The results indicate that the temperature loss increases with the increase of water flow rate
steam mass flux and tube column number
while decreases with the increasing saturated temperature. With the equal steam mass flux
the temperature loss at 45 ℃ is six times of that at 70 ℃ and the temperature loss as water flow rate in 0.08 kg/(m·s)is almost double of that as water flow rate in 0.02 kg/(m·s); the temperature loss rises parabolically with the increasing tube column number in large falling film evaporator. A new design idea of equal temperature loss in each effect evaporator is proposed which facilitates ensuring the heat transfer efficiency.
THOME J R. Falling film evaporation: state-of-the-art review of recent work[J]. Journal of Enhanced Heat Transfer, 1999, 6(2): 263-278.
RIBATSKI G, JACOBI A M. Falling-film evaporation on horizontal tubes-a critical review[J]. International Journal of Refrigeration, 2005, 28(5): 635-653.
YANG L P, SHEN S Q. Experimental study of falling film evaporation heat transfer outside horizontal tubes[J]. Desalination, 2008, 220(1/2/3): 654-660.
ARMBRUSTER R, MITROVIC J. Evaporative cooling of a falling water film on horizontal tubes[J]. Experiment Thermal and Fluid Science, 1998, 18(3): 183-194.
REDDY K V, GHAFFOUR N. Overview of the cost of desalinated water and costing methodologies[J]. Desalination, 2007, 205(1/2/3): 340-353.
RIBATSKI G, THOME J R. Two-phase flow and heat transfer across horizontal tube bundles-a review[J]. Heat Transfer Engineering, 2007, 28(6): 508-524.
侯昊, 毕勤成, 张晓兰. 海水淡化系统中水平管降膜蒸发器流动与传热特性数值研究[J]. 中国电机工程学报, 2011, 31(20): 81-87.
HOU Hao, BI Qincheng, ZHANG Xiaolan. Numerical study on flow and heat transfer characteristics of horizontal-tube falling-film evaporators in seawater desalination system[J]. Proceedings of the CSEE, 2011, 31(20): 81-87.
何茂刚, 范华亮, 王小飞, 等. 水平管外降膜流动的膜厚测量和数值模拟[J]. 西安交通大学学报, 2010, 44(9): 1-5.
HE Maogang, FAN Hualiang, WANG xiaofei, et al. Experimental study and numerical simulation on falling film thickness outside a horizontal tube[J]. Journal of Xi'an Jiaotong University, 2010, 44(9): 1-5.
张颖, 吕凯, 王小飞, 等. 布液方式对水平蒸发管管间流型转换的影响[J]. 西安交通大学学报, 2012, 46(1): 19-23.
ZHANG Ying, LÜ Kai, WANG Xiaofei, et al. Effects of liquid distribution method on falling film mode transitions between horizontal tubes[J]. Journal of Xi'an Jiaotong University, 2012, 46(1): 19-23.
沈胜强, 梁刚涛, 龚路远, 等. 水平管降膜蒸发器传热系数空间分布[J]. 化工学报, 2011(12): 3381-3385.
SHEN Shengqiang, LIANG Gaotao, GONG Luyuan, et al. Falling film evaporation heat transfer of water/salt mixtures from roll-worked enhanced tubes and tube bundle[J]. Journal of Chemical Industry and Engineering, 2011(12): 3381-3385.
ISHIHARA K, PALEN J W, TABOREK J. Critical review of correlations for predicting two-phase flow pressure drop across tube banks[J]. Heat Transfer Engineering, 1980, 1(3): 23-32.
DOWLATI R, KAWAJI M, CHAN A M C. Pitch-to-diameter effect on two-phase flow across an in-line tube bundle[J]. AIChE Journal, 1990, 36(5): 765-772.
XU G P, TOU K W, TSO C P. Two-phase void fraction and pressure drop in horizontal crossflow across a tube bundle[J]. Transactions of the ASME, 1998, 120(1): 140-145.
沈胜强, 刘华, 冯寅, 等. 真空条件下蒸汽横掠水平降膜管束的流动阻力[J]. 化工学报, 2013, 64(3): 886-890.
SHEN Shengqiang, LIU Hua, FENG Yin, et al. Steam flow resistance across horizontal tube bundle under vacuum condition[J]. Journal of Chemical Industry and Engineering, 2013, 64(3): 886-890.
HU X, JACOBI A M. The intertube falling film: Part 1 Flow characteristics, mode transitions, and hysteresis[J]. Journal of Heat Transfer, 1996, 118: 616-625.
0
浏览量
4
下载量
6
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621